Catalytic conversion of polyethylene into aromatics with Pt/ZSM-5: insights into reaction pathways and rate-controlling step regulation

Catalytic pyrolysis of polyethylene (PE) can produce benzene, toluene, and xylene (BTX) as important building-block chemicals, and selectivity control is key to its economic and ecological efficiency. Here, we report a synergistic effect between Pt and ZSM-5 for selective production of BTX from cata...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2023-07, Vol.11 (27), p.14933-1494
Hauptverfasser: Wang, Wenjie, Yao, Chang, Ge, Xiaohu, Pu, Xin, Yuan, Jiangchun, Sun, Weixiao, Chen, Wenyao, Feng, Xiang, Qian, Gang, Duan, Xuezhi, Cao, Yueqiang, Yang, Zhirong, Zhou, Xinggui, Zhang, Jing
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container_end_page 1494
container_issue 27
container_start_page 14933
container_title Journal of materials chemistry. A, Materials for energy and sustainability
container_volume 11
creator Wang, Wenjie
Yao, Chang
Ge, Xiaohu
Pu, Xin
Yuan, Jiangchun
Sun, Weixiao
Chen, Wenyao
Feng, Xiang
Qian, Gang
Duan, Xuezhi
Cao, Yueqiang
Yang, Zhirong
Zhou, Xinggui
Zhang, Jing
description Catalytic pyrolysis of polyethylene (PE) can produce benzene, toluene, and xylene (BTX) as important building-block chemicals, and selectivity control is key to its economic and ecological efficiency. Here, we report a synergistic effect between Pt and ZSM-5 for selective production of BTX from catalytic pyrolysis of PE by providing mechanistic insights into reaction pathways of key intermediates and regulation of the rate-controlling step. A high yield (52%) of BTX was obtained at 450 °C under atmospheric pressure using a Pt/ZSM-5 catalyst, where Pt mainly exists in the metallic state with a cuboctahedral crystal structure. In contrast, thermal pyrolysis of PE produced linear alkenes/alkanes of wide carbon number distribution, and catalytic pyrolysis of PE over ZSM-5 led to a low BTX yield of 21% with C 1 -C 4 alkenes/alkanes being the major products even at a higher temperature (500 °C). It was found that the introduction of Pt into ZSM-5 significantly decreased the aromatization onset temperature, suggesting a reduction of apparent activation energy for the aromatization of alkene intermediates during catalytic pyrolysis of PE. Density functional theory calculations reveal that the aromatization of intermediate ethylene proceeds via oligomerization, cyclization, and dehydrogenation, and the energy barrier of the rate-controlling step, i.e. , dehydrogenation of on Pt/ZSM-5 is much lower than that on ZSM-5. As a result, Pt enhanced the aromatization rates of light alkenes formed by PE cracking over the acid sites in ZSM-5, the synergistic effects of which contributed to the high BTX yield on Pt/ZSM-5. Pt enhanced aromatization rates of alkenes formed by polyethylene cracking over ZSM-5 acid sites, which contributed to high BTX yield.
doi_str_mv 10.1039/d3ta01917a
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Here, we report a synergistic effect between Pt and ZSM-5 for selective production of BTX from catalytic pyrolysis of PE by providing mechanistic insights into reaction pathways of key intermediates and regulation of the rate-controlling step. A high yield (52%) of BTX was obtained at 450 °C under atmospheric pressure using a Pt/ZSM-5 catalyst, where Pt mainly exists in the metallic state with a cuboctahedral crystal structure. In contrast, thermal pyrolysis of PE produced linear alkenes/alkanes of wide carbon number distribution, and catalytic pyrolysis of PE over ZSM-5 led to a low BTX yield of 21% with C 1 -C 4 alkenes/alkanes being the major products even at a higher temperature (500 °C). It was found that the introduction of Pt into ZSM-5 significantly decreased the aromatization onset temperature, suggesting a reduction of apparent activation energy for the aromatization of alkene intermediates during catalytic pyrolysis of PE. Density functional theory calculations reveal that the aromatization of intermediate ethylene proceeds via oligomerization, cyclization, and dehydrogenation, and the energy barrier of the rate-controlling step, i.e. , dehydrogenation of on Pt/ZSM-5 is much lower than that on ZSM-5. As a result, Pt enhanced the aromatization rates of light alkenes formed by PE cracking over the acid sites in ZSM-5, the synergistic effects of which contributed to the high BTX yield on Pt/ZSM-5. 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A, Materials for energy and sustainability</title><description>Catalytic pyrolysis of polyethylene (PE) can produce benzene, toluene, and xylene (BTX) as important building-block chemicals, and selectivity control is key to its economic and ecological efficiency. Here, we report a synergistic effect between Pt and ZSM-5 for selective production of BTX from catalytic pyrolysis of PE by providing mechanistic insights into reaction pathways of key intermediates and regulation of the rate-controlling step. A high yield (52%) of BTX was obtained at 450 °C under atmospheric pressure using a Pt/ZSM-5 catalyst, where Pt mainly exists in the metallic state with a cuboctahedral crystal structure. In contrast, thermal pyrolysis of PE produced linear alkenes/alkanes of wide carbon number distribution, and catalytic pyrolysis of PE over ZSM-5 led to a low BTX yield of 21% with C 1 -C 4 alkenes/alkanes being the major products even at a higher temperature (500 °C). 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A, Materials for energy and sustainability</jtitle><date>2023-07-11</date><risdate>2023</risdate><volume>11</volume><issue>27</issue><spage>14933</spage><epage>1494</epage><pages>14933-1494</pages><issn>2050-7488</issn><eissn>2050-7496</eissn><abstract>Catalytic pyrolysis of polyethylene (PE) can produce benzene, toluene, and xylene (BTX) as important building-block chemicals, and selectivity control is key to its economic and ecological efficiency. Here, we report a synergistic effect between Pt and ZSM-5 for selective production of BTX from catalytic pyrolysis of PE by providing mechanistic insights into reaction pathways of key intermediates and regulation of the rate-controlling step. A high yield (52%) of BTX was obtained at 450 °C under atmospheric pressure using a Pt/ZSM-5 catalyst, where Pt mainly exists in the metallic state with a cuboctahedral crystal structure. In contrast, thermal pyrolysis of PE produced linear alkenes/alkanes of wide carbon number distribution, and catalytic pyrolysis of PE over ZSM-5 led to a low BTX yield of 21% with C 1 -C 4 alkenes/alkanes being the major products even at a higher temperature (500 °C). It was found that the introduction of Pt into ZSM-5 significantly decreased the aromatization onset temperature, suggesting a reduction of apparent activation energy for the aromatization of alkene intermediates during catalytic pyrolysis of PE. Density functional theory calculations reveal that the aromatization of intermediate ethylene proceeds via oligomerization, cyclization, and dehydrogenation, and the energy barrier of the rate-controlling step, i.e. , dehydrogenation of on Pt/ZSM-5 is much lower than that on ZSM-5. As a result, Pt enhanced the aromatization rates of light alkenes formed by PE cracking over the acid sites in ZSM-5, the synergistic effects of which contributed to the high BTX yield on Pt/ZSM-5. Pt enhanced aromatization rates of alkenes formed by polyethylene cracking over ZSM-5 acid sites, which contributed to high BTX yield.</abstract><cop>Cambridge</cop><pub>Royal Society of Chemistry</pub><doi>10.1039/d3ta01917a</doi><tpages>8</tpages><orcidid>https://orcid.org/0000-0002-8213-4314</orcidid><orcidid>https://orcid.org/0000-0002-5843-5950</orcidid><orcidid>https://orcid.org/0000-0001-9926-7845</orcidid><orcidid>https://orcid.org/0000-0001-7299-5690</orcidid><orcidid>https://orcid.org/0000-0002-1036-4049</orcidid></addata></record>
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source Royal Society Of Chemistry Journals 2008-
subjects Alkanes
Alkenes
Aromatic compounds
Benzene
Catalysts
Catalytic converters
Crystal structure
Dehydrogenation
Density functional theory
Ecological effects
Intermediates
Oligomerization
Polyethylene
Polyethylenes
Pyrolysis
Synergistic effect
Toluene
Xylene
title Catalytic conversion of polyethylene into aromatics with Pt/ZSM-5: insights into reaction pathways and rate-controlling step regulation
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